Biomass‐Derived Functional Polyacetals via Controlled Cascade Enyne Metathesis Polymerization: Tunable Degradability, Postpolymerization Modification, and Self‐Assembly

Y Yuan Tao B Bixia Xie (School of Biomedical Sciences and Engineering South China University of Technology, Guangzhou International Campus Guangzhou 511442 P.R. China) J Jingrong Liu C Changquan Lin (School of Biomedical Sciences and Engineering South China University of Technology, Guangzhou International Campus Guangzhou 511442 P.R. China) Y Yanli Feng (School of Biomedical Sciences and Engineering South China University of Technology, Guangzhou International Campus Guangzhou 511442 P.R. China) J Jiazhou Jiang (School of Biomedical Sciences and Engineering South China University of Technology, Guangzhou International Campus Guangzhou 511442 P.R. China) Y Yuhan Peng (School of Biomedical Sciences and Engineering South China University of Technology, Guangzhou International Campus Guangzhou 511442 P.R. China) L Lijun Liu (Protein Structure and X-ray Crystallography Laboratory, Structural Biology Center) J Junpeng Zhao (Faculty of Materials Science and Engineering) L Liangbing Fu (School of Biomedical Sciences and Engineering South China University of Technology, Guangzhou International Campus Guangzhou 511442 P.R. China)

Abstract

Abstract We present a versatile platform for the synthesis of functional polyacetals from sugar and furfuryl alcohol derivatives using controlled cascade enyne metathesis polymerization. A range of monomers with defined stereochemistry were explored that featured broad functional group tolerance. The polymerization showed living character and permitted preparation of functionalized polyacetals with targetable molecular weights and more complex architectures. In addition, by harnessing the chiral nature of starting materials, the method granted facile access to chiral polyacetals. Modulation of regiochemical and substituent factors around the acetal motif conferred tunable hydrolysis rate, as well as photodegradability when installed with an ortho ‐nitrobenzyl group. The polymer structure was further elaborated by postpolymerization modification via leveraging the reactivity of suitable pendent groups and preparation of fully degradable bottlebrush polymers via graft‐through polymerization. Further utilities of the method were showcased by the preparation of amphiphilic copolymers with complete degradability that exhibited self‐assembly behaviors through copolymerization.

Article Details

Volume / Issue Vol. 64, Issue 27
Published July 01, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

Y

Yuan Tao

B

Bixia Xie

School of Biomedical Sciences and Engineering South China University of Technology, Guangzhou International Campus Guangzhou 511442 P.R. China

J

Jingrong Liu

C

Changquan Lin

School of Biomedical Sciences and Engineering South China University of Technology, Guangzhou International Campus Guangzhou 511442 P.R. China

Y

Yanli Feng

School of Biomedical Sciences and Engineering South China University of Technology, Guangzhou International Campus Guangzhou 511442 P.R. China

J

Jiazhou Jiang

School of Biomedical Sciences and Engineering South China University of Technology, Guangzhou International Campus Guangzhou 511442 P.R. China

Y

Yuhan Peng

School of Biomedical Sciences and Engineering South China University of Technology, Guangzhou International Campus Guangzhou 511442 P.R. China

L

Lijun Liu

Protein Structure and X-ray Crystallography Laboratory, Structural Biology Center

J

Junpeng Zhao

Faculty of Materials Science and Engineering

L

Liangbing Fu

School of Biomedical Sciences and Engineering South China University of Technology, Guangzhou International Campus Guangzhou 511442 P.R. China